Robustness analysis on aerial deployment motion of a Mars aircraft using multibody dynamics simulation: effects of wing-unfolding torque and timing
暂无分享,去创建一个
[1] S. Hoerner. Fluid-Dynamic Lift , 1985 .
[2] Koji Fujita,et al. Dynamic Behaviour of Mars Airplane with Folded-Wing Deployment , 2014 .
[3] M. Okamoto,et al. Aerodynamic Characteristics at Low Reynolds Numbers for Wings of Various Planforms , 2011 .
[4] L. Shampine,et al. Computer solution of ordinary differential equations : the initial value problem , 1975 .
[5] Akira Oyama,et al. A new efficient and useful robust optimization approach - design for multi-objective six sigma , 2005, 2005 IEEE Congress on Evolutionary Computation.
[6] Christopher Bovais,et al. Flight testing the Flying Radar Target (FLYRT) , 1994 .
[7] Scot Rafkin,et al. Meteorological predictions for 2003 Mars Exploration Rover high‐priority landing sites , 2003 .
[8] John C. Pearl,et al. Thermal Emission Spectrometer results: Mars atmospheric thermal structure and aerosol distribution , 2001 .
[9] 下山 幸治,et al. Robust Aerodynamic Design of Mars Exploratory Airplane Wing: With a New Optimization Method , 2010 .
[10] Jamey Jacob,et al. Design Limitations of Deployable Wings for Small Low Altitude UAVs , 2009 .
[11] Koji Fujita,et al. Numerical analysis for an aerial deployment motion of a folded-wing airplane , 2014 .
[12] Mark D. Guynn,et al. Evolution of a Mars Airplane Concept for the ARES Mars Scout Mission , 2003 .